{"id":{"repo_id":"wustl","oai_identifier":"oai:openscholarship.wustl.edu:etd-1557"},"canonical_url":"https://search.dev.ndltd.org/etd/wustl/oai:openscholarship.wustl.edu:etd-1557","repository":{"repo_id":"wustl","name":"Washington University in St. Louis","base_url":"https://openscholarship.wustl.edu/do/oai/"},"display":{"title":"The Role of Apolipoprotein E Concentration and Isoform in Amyloid-beta Metabolism In Vivo","abstract":"Alzheimer's disease is a progressive, neurodegenerative disease characterized by several pathological lesions, one of which is the accumulation of the amyloid-&beta;: A&beta;) peptide into extracellular amyloid plaques. Several autosomal dominant mutations have been shown to cause familial forms of early-onset Alzheimer's disease, but factors that modulate the risk and onset for the more common sporadic, late-onset Alzheimer's disease are less understood. The strongest identified genetic risk factor for sporadic, late-onset Alzheimer's disease is the <italic>APOE</italic> e4 allele, the presence of which dramatically increases risk and hastens the onset of the disease relative to non-carriers of the allele. Evidence that <italic>APOE</italic> e4-carriers exhibit accelerated onset of amyloid accumulation has led to the hypothesis that <italic>APOE</italic> genotype differentially modulates AD risk and onset via regulation of A&beta; metabolism. Thus, we sought to characterize the extent to which modulating the concentration and isoform of apoE regulates brain A&beta; metabolism. To this end, we created transgenic mice overexpressing the low-density lipoprotein receptor: LDLR), a major receptor for apoE in the central nervous system, which led to a significant reduction of brain apoE concentration. After crossing these mice to a mouse model of &beta;-amyloidosis, the resulting mice exhibited a marked reduction in A&beta; deposition. To examine the mechanism by which A&beta; deposition is reduced with increased LDLR expression, we performed in vivo microdialysis in young mice, finding that early decreases in the steady state concentration of A&beta; in the brain interstitial fluid: ISF) could be explained by enhanced A&beta; clearance. To further investigate the mechanism by which LDLR regulates A&beta; metabolism prior to amyloid plaque deposition, we utilized a brain A&beta; efflux method to show that LDLR overexpression increased A&beta; clearance from the brain. To complement this approach, we developed a novel method to directly assess the plasma appearance rate of brain-derived A&beta;, which revealed that LDLR overexpression increased brain to blood efflux of A&beta;. We next examined the role of specific apoE isoforms in modulating amyloid accumulation in humans and in a mouse model of &beta;-amyloidosis in which human apoE isoforms were expressed. We found that cerebral A&beta; deposition varied in both humans and in mice in a manner that corresponded to <italic>APOE</italic> genotype. Using in vivo microdialysis, we found in both young and old mice that the concentration and clearance of A&beta; from the ISF differed according to the isoform of apoE expressed. In vivo stable isotopic labeling kinetics experiments in young mice revealed that fractional synthesis rates of A&beta; did not vary according to human apoE isoform. Moreover, we infused recombinant apoE particles during in vivo microdialysis to demonstrate that intrinsic differences in apoE isoforms contribute to differences in the steady state concentration of ISF A&beta;. Together, these results suggest a mechanism by which <italic>APOE</italic> alleles modulate AD risk through differential regulation of brain A&beta; clearance. Furthermore, our results suggest that apoE receptors and other molecules involved in A&beta; clearance may represent useful therapeutic targets for AD prevention.","abstract_html":"Alzheimer&#x27;s disease is a progressive, neurodegenerative disease characterized by several pathological lesions, one of which is the accumulation of the amyloid-&amp;beta;: A&amp;beta;) peptide into extracellular amyloid plaques. Several autosomal dominant mutations have been shown to cause familial forms of early-onset Alzheimer&#x27;s disease, but factors that modulate the risk and onset for the more common sporadic, late-onset Alzheimer&#x27;s disease are less understood. The strongest identified genetic risk factor for sporadic, late-onset Alzheimer&#x27;s disease is the &lt;italic&gt;APOE&lt;/italic&gt; e4 allele, the presence of which dramatically increases risk and hastens the onset of the disease relative to non-carriers of the allele. Evidence that &lt;italic&gt;APOE&lt;/italic&gt; e4-carriers exhibit accelerated onset of amyloid accumulation has led to the hypothesis that &lt;italic&gt;APOE&lt;/italic&gt; genotype differentially modulates AD risk and onset via regulation of A&amp;beta; metabolism. Thus, we sought to characterize the extent to which modulating the concentration and isoform of apoE regulates brain A&amp;beta; metabolism. To this end, we created transgenic mice overexpressing the low-density lipoprotein receptor: LDLR), a major receptor for apoE in the central nervous system, which led to a significant reduction of brain apoE concentration. After crossing these mice to a mouse model of &amp;beta;-amyloidosis, the resulting mice exhibited a marked reduction in A&amp;beta; deposition. To examine the mechanism by which A&amp;beta; deposition is reduced with increased LDLR expression, we performed in vivo microdialysis in young mice, finding that early decreases in the steady state concentration of A&amp;beta; in the brain interstitial fluid: ISF) could be explained by enhanced A&amp;beta; clearance. To further investigate the mechanism by which LDLR regulates A&amp;beta; metabolism prior to amyloid plaque deposition, we utilized a brain A&amp;beta; efflux method to show that LDLR overexpression increased A&amp;beta; clearance from the brain. To complement this approach, we developed a novel method to directly assess the plasma appearance rate of brain-derived A&amp;beta;, which revealed that LDLR overexpression increased brain to blood efflux of A&amp;beta;. We next examined the role of specific apoE isoforms in modulating amyloid accumulation in humans and in a mouse model of &amp;beta;-amyloidosis in which human apoE isoforms were expressed. We found that cerebral A&amp;beta; deposition varied in both humans and in mice in a manner that corresponded to &lt;italic&gt;APOE&lt;/italic&gt; genotype. Using in vivo microdialysis, we found in both young and old mice that the concentration and clearance of A&amp;beta; from the ISF differed according to the isoform of apoE expressed. In vivo stable isotopic labeling kinetics experiments in young mice revealed that fractional synthesis rates of A&amp;beta; did not vary according to human apoE isoform. Moreover, we infused recombinant apoE particles during in vivo microdialysis to demonstrate that intrinsic differences in apoE isoforms contribute to differences in the steady state concentration of ISF A&amp;beta;. Together, these results suggest a mechanism by which &lt;italic&gt;APOE&lt;/italic&gt; alleles modulate AD risk through differential regulation of brain A&amp;beta; clearance. Furthermore, our results suggest that apoE receptors and other molecules involved in A&amp;beta; clearance may represent useful therapeutic targets for AD prevention.","abstract_has_math":false,"creators":["Castellano, Joseph"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation","degree_discipline":"Biology and Biomedical Sciences: Neurosciences","degree_department":null,"school":null,"contributors":["David Holtzman"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2011,"date_issued":"2011-01-01T08:00:00Z","date_published":"2011-01-01T08:00:00Z","updated_at":"2026-07-24T06:13:14Z","subjects":["Neurosciences","Biochemistry","Medicine","Alzheimer's disease","Amyloid","ApoE4","Apolipoprotein E","clearance","Mouse models"],"languages":["English (en)"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K7416V3S"],"render_values":[{"text":"https://doi.org/10.7936/K7416V3S","href":"https://doi.org/10.7936/K7416V3S","code":true}]}]},"links":{"outbound_url":"https://openscholarship.wustl.edu/etd/558","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["David Holtzman"]},{"key":"dc:creator","label":"Author","values":["Castellano, Joseph"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2015-04-06T07:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Biology and Biomedical Sciences: Neurosciences"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Doctor of Philosophy (PhD)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Neurosciences","Biochemistry","Medicine","Alzheimer's disease","Amyloid","ApoE4","Apolipoprotein E","clearance","Mouse models"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["English (en)"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://openscholarship.wustl.edu/etd/558"]},{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K7416V3S"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Alzheimer's disease is a progressive, neurodegenerative disease characterized by several pathological lesions, one of which is the accumulation of the amyloid-&beta;: A&beta;) peptide into extracellular amyloid plaques. Several autosomal dominant mutations have been shown to cause familial forms of early-onset Alzheimer's disease, but factors that modulate the risk and onset for the more common sporadic, late-onset Alzheimer's disease are less understood. The strongest identified genetic risk factor for sporadic, late-onset Alzheimer's disease is the <italic>APOE</italic> e4 allele, the presence of which dramatically increases risk and hastens the onset of the disease relative to non-carriers of the allele. Evidence that <italic>APOE</italic> e4-carriers exhibit accelerated onset of amyloid accumulation has led to the hypothesis that <italic>APOE</italic> genotype differentially modulates AD risk and onset via regulation of A&beta; metabolism. Thus, we sought to characterize the extent to which modulating the concentration and isoform of apoE regulates brain A&beta; metabolism. To this end, we created transgenic mice overexpressing the low-density lipoprotein receptor: LDLR), a major receptor for apoE in the central nervous system, which led to a significant reduction of brain apoE concentration. After crossing these mice to a mouse model of &beta;-amyloidosis, the resulting mice exhibited a marked reduction in A&beta; deposition. To examine the mechanism by which A&beta; deposition is reduced with increased LDLR expression, we performed in vivo microdialysis in young mice, finding that early decreases in the steady state concentration of A&beta; in the brain interstitial fluid: ISF) could be explained by enhanced A&beta; clearance. To further investigate the mechanism by which LDLR regulates A&beta; metabolism prior to amyloid plaque deposition, we utilized a brain A&beta; efflux method to show that LDLR overexpression increased A&beta; clearance from the brain. To complement this approach, we developed a novel method to directly assess the plasma appearance rate of brain-derived A&beta;, which revealed that LDLR overexpression increased brain to blood efflux of A&beta;. We next examined the role of specific apoE isoforms in modulating amyloid accumulation in humans and in a mouse model of &beta;-amyloidosis in which human apoE isoforms were expressed. We found that cerebral A&beta; deposition varied in both humans and in mice in a manner that corresponded to <italic>APOE</italic> genotype. Using in vivo microdialysis, we found in both young and old mice that the concentration and clearance of A&beta; from the ISF differed according to the isoform of apoE expressed. In vivo stable isotopic labeling kinetics experiments in young mice revealed that fractional synthesis rates of A&beta; did not vary according to human apoE isoform. Moreover, we infused recombinant apoE particles during in vivo microdialysis to demonstrate that intrinsic differences in apoE isoforms contribute to differences in the steady state concentration of ISF A&beta;. Together, these results suggest a mechanism by which <italic>APOE</italic> alleles modulate AD risk through differential regulation of brain A&beta; clearance. Furthermore, our results suggest that apoE receptors and other molecules involved in A&beta; clearance may represent useful therapeutic targets for AD prevention."]},{"key":"dc:title","label":"Title","values":["The Role of Apolipoprotein E Concentration and Isoform in Amyloid-beta Metabolism In Vivo"]}]}],"canonical_facts":{"dc:contributor":["David Holtzman"],"dc:creator":["Castellano, Joseph"],"dc:date.available":["2015-04-06T07:00:00Z"],"dc:description.abstract":["Alzheimer's disease is a progressive, neurodegenerative disease characterized by several pathological lesions, one of which is the accumulation of the amyloid-&beta;: A&beta;) peptide into extracellular amyloid plaques. Several autosomal dominant mutations have been shown to cause familial forms of early-onset Alzheimer's disease, but factors that modulate the risk and onset for the more common sporadic, late-onset Alzheimer's disease are less understood. The strongest identified genetic risk factor for sporadic, late-onset Alzheimer's disease is the <italic>APOE</italic> e4 allele, the presence of which dramatically increases risk and hastens the onset of the disease relative to non-carriers of the allele. Evidence that <italic>APOE</italic> e4-carriers exhibit accelerated onset of amyloid accumulation has led to the hypothesis that <italic>APOE</italic> genotype differentially modulates AD risk and onset via regulation of A&beta; metabolism. Thus, we sought to characterize the extent to which modulating the concentration and isoform of apoE regulates brain A&beta; metabolism. To this end, we created transgenic mice overexpressing the low-density lipoprotein receptor: LDLR), a major receptor for apoE in the central nervous system, which led to a significant reduction of brain apoE concentration. After crossing these mice to a mouse model of &beta;-amyloidosis, the resulting mice exhibited a marked reduction in A&beta; deposition. To examine the mechanism by which A&beta; deposition is reduced with increased LDLR expression, we performed in vivo microdialysis in young mice, finding that early decreases in the steady state concentration of A&beta; in the brain interstitial fluid: ISF) could be explained by enhanced A&beta; clearance. To further investigate the mechanism by which LDLR regulates A&beta; metabolism prior to amyloid plaque deposition, we utilized a brain A&beta; efflux method to show that LDLR overexpression increased A&beta; clearance from the brain. To complement this approach, we developed a novel method to directly assess the plasma appearance rate of brain-derived A&beta;, which revealed that LDLR overexpression increased brain to blood efflux of A&beta;. We next examined the role of specific apoE isoforms in modulating amyloid accumulation in humans and in a mouse model of &beta;-amyloidosis in which human apoE isoforms were expressed. We found that cerebral A&beta; deposition varied in both humans and in mice in a manner that corresponded to <italic>APOE</italic> genotype. Using in vivo microdialysis, we found in both young and old mice that the concentration and clearance of A&beta; from the ISF differed according to the isoform of apoE expressed. In vivo stable isotopic labeling kinetics experiments in young mice revealed that fractional synthesis rates of A&beta; did not vary according to human apoE isoform. Moreover, we infused recombinant apoE particles during in vivo microdialysis to demonstrate that intrinsic differences in apoE isoforms contribute to differences in the steady state concentration of ISF A&beta;. Together, these results suggest a mechanism by which <italic>APOE</italic> alleles modulate AD risk through differential regulation of brain A&beta; clearance. Furthermore, our results suggest that apoE receptors and other molecules involved in A&beta; clearance may represent useful therapeutic targets for AD prevention."],"dc:identifier":["https://openscholarship.wustl.edu/etd/558"],"dc:identifier.doi":["https://doi.org/10.7936/K7416V3S"],"dc:language":["English (en)"],"dc:subject":["Neurosciences","Biochemistry","Medicine","Alzheimer's disease","Amyloid","ApoE4","Apolipoprotein E","clearance","Mouse models"],"dc:title":["The Role of Apolipoprotein E Concentration and Isoform in Amyloid-beta Metabolism In Vivo"],"thesis:degree_discipline":["Biology and Biomedical Sciences: Neurosciences"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T06:13:14Z"}